State Key Laboratory for Modification of Chemical Fibers and Polymer Materials, College of Materials Science and Engineering, Donghua University, Shanghai 201620, China.
Shanghai Collaborative Innovation Center of Agri-Seeds, Joint Center for Single Cell Biology, School of Agriculture and Biology, Shanghai Jiao Tong University, 800 Dongchuan Road, Shanghai 200240, China.
Molecules. 2024 Jun 5;29(11):2677. doi: 10.3390/molecules29112677.
Transparent soil (TS) presents immense potential for root phenotyping due to its ability to facilitate high-resolution imaging. However, challenges related to transparency, mechanical properties, and cost hinder its development. Herein, we introduce super-transparent soil (s-TS) prepared via the droplet method using low acyl gellan gum and hydroxyethyl cellulose crosslinked with magnesium ions. The refractive index of the hydroxyethyl cellulose solution (1.345) closely aligns with that of water (1.333) and the low acyl gellan gum solution (1.340), thereby significantly enhancing the transmittance of hydrogel-based transparent soil. Optimal transmittance (98.45%) is achieved with polymer concentrations ranging from 0.8 to 1.6 wt.% and ion concentrations between 0.01 and 0.09 mol·L. After 60 days of plant cultivation, s-TS maintains a transmittance exceeding 89.5%, enabling the detailed visualization of root growth dynamics. Furthermore, s-TS exhibits remarkable mechanical properties, withstanding a maximum compressive stress of 477 kPa and supporting a maximum load-bearing depth of 186 cm. This innovative approach holds promising implications for advanced root phenotyping studies, fostering the investigation of root heterogeneity and the development of selective expression under controlled conditions.
透明土壤(TS)由于其能够实现高分辨率成像的能力,在根系表型分析方面具有巨大的潜力。然而,其透明度、机械性能和成本方面的挑战限制了它的发展。在此,我们通过液滴法引入了超级透明土壤(s-TS),该土壤使用低酰基瓜尔胶和经镁离子交联的羟乙基纤维素制备。羟乙基纤维素溶液(1.345)的折射率与水(1.333)和低酰基瓜尔胶溶液(1.340)非常接近,从而显著提高了水凝胶基透明土壤的透光率。聚合物浓度在 0.8 到 1.6wt.%之间,离子浓度在 0.01 到 0.09mol·L 之间时,透光率达到最佳值(98.45%)。在植物培养 60 天后,s-TS 的透光率仍超过 89.5%,能够详细观察到根系生长动态。此外,s-TS 还具有出色的机械性能,能够承受 477kPa 的最大压缩应力,并支撑 186cm 的最大承载深度。这种创新方法为先进的根系表型研究提供了广阔的前景,促进了对根系异质性的研究,并在受控条件下开发了选择性表达。